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I'm a new pratikant and when i joined in the company they gave me the task of configuring number of items per page by giving textbox input for example i created a textbox in html and submmit button and now i want to insert some value say 2 then it should show me first 2 records of the items in the same way 3, 4, 5 ,.......now for me the problem is i was unable to make or attch or call my html code into views.py i mean i was able to make he static pagination

eg :

table.paginate(page=request.GET.get("page", 1), per_page = 10)

like this but now what i want is when i give input to the textbox,, PER_PAGE must be changed according to the given input like 2 records or 4 or n records

i donno whether it is easy or tough but im a starter of python programming and learning still i was unable to make it please help me

Fella student Thanks in advance

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1 Answer 1

Use

table.paginate(page=request.GET.get("page", 1), per_page = request.GET.get("per_page", 10))

That way 10 will be the default value if "per_page" wasn't passed.

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no im getting the default value with the above piece of code which i mentioned in my question i was able to pass that –  user3409830 Apr 14 at 15:14
    
my task is they asked me to create a new textfield or textbox so i wrote some thing like this <table class ="paleblue"> <tr> <td>Number of items per page</td> <td>{{ chiplet_number}}</td> <td width="150"> </td> <td><input class="paleblue" type="submit" value="Apply" /></td> </tr> <table/> –  user3409830 Apr 14 at 15:17
    
now the point is iwas unable to make the input to connect with my views.py –  user3409830 Apr 14 at 15:18
    
<table class ="paleblue"> <tr> <td>Number of items per page</td> <td>{{ chiplet_number}}</td> <td width="150"> <input type="text" name="Chipletnumber"/> </td> <td><input class="paleblue" type="submit" value="Apply" /></td> </tr> <table/> –  user3409830 Apr 14 at 15:21

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